US11946981B2 - Cable sequence detection method and detection system - Google Patents

Cable sequence detection method and detection system Download PDF

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Publication number
US11946981B2
US11946981B2 US17/702,949 US202217702949A US11946981B2 US 11946981 B2 US11946981 B2 US 11946981B2 US 202217702949 A US202217702949 A US 202217702949A US 11946981 B2 US11946981 B2 US 11946981B2
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base station
rru
antenna
port
switch circuit
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US20220214407A1 (en
Inventor
Jian Hu
Jinjun YU
Hu ZHAO
Yongding ZHANG
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Huawei Technologies Co Ltd
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Huawei Technologies Co Ltd
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/10Monitoring; Testing of transmitters
    • H04B17/11Monitoring; Testing of transmitters for calibration
    • H04B17/14Monitoring; Testing of transmitters for calibration of the whole transmission and reception path, e.g. self-test loop-back
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01RMEASURING ELECTRIC VARIABLES; MEASURING MAGNETIC VARIABLES
    • G01R31/00Arrangements for testing electric properties; Arrangements for locating electric faults; Arrangements for electrical testing characterised by what is being tested not provided for elsewhere
    • G01R31/50Testing of electric apparatus, lines, cables or components for short-circuits, continuity, leakage current or incorrect line connections
    • G01R31/58Testing of lines, cables or conductors
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01QANTENNAS, i.e. RADIO AERIALS
    • H01Q1/00Details of, or arrangements associated with, antennas
    • H01Q1/12Supports; Mounting means
    • H01Q1/22Supports; Mounting means by structural association with other equipment or articles
    • H01Q1/24Supports; Mounting means by structural association with other equipment or articles with receiving set
    • H01Q1/241Supports; Mounting means by structural association with other equipment or articles with receiving set used in mobile communications, e.g. GSM
    • H01Q1/246Supports; Mounting means by structural association with other equipment or articles with receiving set used in mobile communications, e.g. GSM specially adapted for base stations
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B17/00Monitoring; Testing
    • H04B17/10Monitoring; Testing of transmitters
    • H04B17/11Monitoring; Testing of transmitters for calibration
    • H04B17/12Monitoring; Testing of transmitters for calibration of transmit antennas, e.g. of the amplitude or phase

Definitions

  • the embodiments relate to the field of communications technologies, and in particular, to a cable sequence detection method and a detection system for detecting a connection relationship when ports between a remote radio unit (RRU) and a base station antenna are connected through radio frequency cables.
  • RRU remote radio unit
  • a base station architecture including a baseband unit (BBU), an RRU, and a base station antenna
  • BBU baseband unit
  • RRU ports are in a one-to-one correspondence with base station antenna ports.
  • the RRU receives a signal from the base station antenna and sends the signal to the BBU.
  • the RRU receives a signal from the BBU, processes the signal, and then sends a processed signal through the base station antenna.
  • An 8 transmit 8 receive (8T8R) RRU is used as an example.
  • the 8T8R RRU includes eight antenna ports (an ANT 0 to an ANT 7) and one antenna calibration port (CAL).
  • the 8T8R RRU is connected to the base station antenna through nine radio frequency jumpers, and the nine radio frequency jumpers include eight service jumpers and one calibration jumper. Because there are a relatively large quantity of radio frequency jumpers, a misoperation may occur during engineering installation, resulting in an incorrect cable sequence connection of the radio frequency jumpers. Refer to FIG. 1 A . In a normal case, the eight antenna ports of the 8T8R RRU are sequentially connected to eight ports of the base station antenna. In addition, the calibration port CAL of the RRU is connected to a calibration port of the base station antenna.
  • the calibration port of the RRU is connected to the base station antenna through a directional coupler and a power splitter. Refer to FIG. 1 B . Because of a misoperation, an antenna port 4 of the 8T8R RRU is connected to a port 8 of the base station antenna, and an antenna port 8 of the 8T8R RRU is connected to a port 4 of the base station antenna. Because there is an installation distance (which is usually 2.5 m to 10 m) between the base station antenna and the RRU, it is not easy to discover the incorrect cable sequence connection of the radio frequency jumpers.
  • a beam scanning scheme is used for coverage, and a precise coverage and beamforming effect can be achieved only when the RRU ports and the corresponding base station antenna ports are connected in a one-to-one correspondence. Therefore, a connection cable sequence of the radio frequency jumpers between the base station antenna and the RRU is crucial to running and performance in 5th generation mobile communication.
  • Embodiments may provide a cable sequence detection method and a detection system, to accurately detect a cable sequence of ports between an RRU and a base station antenna.
  • an embodiment provides a cable sequence detection method.
  • a base station antenna includes N ports, and a remote radio unit RRU includes M antenna ports and one calibration port CAL. Any port i of the base station antenna corresponds to a directional coupling branch Ti, a switch circuit Ki is disposed on the Ti, and connection and disconnection of the switch circuit Ki are controlled by a remote control unit RCU.
  • M, N, and i are integers, and 1 ⁇ i ⁇ N.
  • the M antenna ports of the RRU have been connected to the N ports of the base station antenna.
  • the cable sequence detection method includes the following steps:
  • the RRU sends a detection signal to the base station antenna through the any antenna port.
  • the RCU controls a switch circuit to disconnect a switch circuit corresponding to a to-be-detected channel, and controls another switch circuit to be connected.
  • whether an antenna port that is of the RRU and that corresponds to the to-be-detected channel is connected to a port of the base station antenna is determined based on energy obtained during coupling by a directional coupling branch corresponding to the to-be-detected channel. According to this method, a cable sequence of the ports between the RRU and the base station antenna can be accurately detected.
  • the method further includes: detecting a connection relationship between each of the other N-1 ports than the port i of the base station antenna and the antenna port j of the RRU.
  • a connection relationship between the antenna port j of the RRU and the N ports of the base station antenna can be obtained.
  • the method further includes: detecting a connection relationship between each of the other M-1 antenna ports than the antenna port j of the RRU and the N ports of the base station antenna.
  • a connection relationship between the M ports of the RRU and the N ports of the base station antenna can be obtained.
  • the method further includes: generating a cable sequence connection diagram based on a connection relationship between each of the M antenna ports of the RRU and the N ports of the base station antenna.
  • the cable sequence connection diagram may be displayed on a maintenance terminal with a display interface.
  • a user can intuitively see a connection relationship between an antenna port of the RRU and a port of the base station antenna by observing the cable sequence connection diagram.
  • that the RCU controls the switch circuit Ki to be disconnected, and controls another switch circuit to be connected includes: The RCU sends a control signal to each switch circuit of the base station antenna; and based on the control signal, controls the switch circuit Ki to be disconnected, and controls all the other switch circuits to be connected.
  • control signal may be a digit sequence used to indicate a high/low level.
  • connection and disconnection of the switch circuit are controlled by using the digit sequence indicating a high/low level.
  • a digit sequence including 0 and 1 may be used as the control signal, 0 may be used to indicate a low level, and 1 may be used to indicate a high level. Further, 1 may alternatively be used to indicate a low level, and 0 may alternatively be used to indicate a high level, provided that the switch circuit Ki is disconnected and the another switch circuit is connected after control is performed by using the control signal.
  • the switch circuit Ki includes a PIN diode.
  • a common diode includes a PN junction.
  • a thin light-doping intrinsic (I) semiconductor layer is added between P and N semiconductor materials, and a formed diode of this P-I-N structure is the PIN diode.
  • connection or disconnection of the PIN diode is controlled by using the control signal.
  • an embodiment provides a detection system, including a base station antenna, a remote radio unit RRU, and a remote control unit RCU.
  • the RRU includes M antenna ports and one calibration port CAL.
  • the base station antenna includes N ports, any port i of the base station antenna corresponds to a directional coupling branch Ti, a switch circuit Ki is disposed on the Ti, connection and disconnection of the switch circuit Ki are controlled by the remote control unit RCU, M, N, and i are integers, and 1 ⁇ i ⁇ N.
  • the RCU is configured to: control the switch circuit Ki to be disconnected and control another switch circuit to be connected.
  • the RRU is configured to: send a detection signal to the base station antenna through any antenna port j after the M antenna ports of the RRU have been connected to the N ports of the base station antenna; after the RCU controls the switch circuit Ki to be disconnected and controls the another switch circuit to be connected, detect whether energy Qi obtained during coupling by the directional coupling branch Ti is greater than a threshold; and if Qi is greater than the threshold, determine that the antenna port j of the RRU is connected to the port i of the base station antenna; or if Qi is less than or equal to the threshold, determine that the antenna port j of the RRU is not connected to the port i of the base station antenna.
  • the RRU sends a detection signal to the base station antenna through the any antenna port.
  • the RCU controls a switch circuit to disconnect a switch circuit corresponding to a to-be-detected channel and controls another switch circuit to be connected.
  • whether an antenna port that is of the RRU and that corresponds to the to-be-detected channel is connected to a port of the base station antenna is determined based on energy obtained during coupling by a directional coupling branch corresponding to the to-be-detected channel. According to this method, a cable sequence of the ports between the RRU and the base station antenna can be accurately detected.
  • the detection system is further configured to detect a connection relationship between each of the other N-1 ports than the port i of the base station antenna and the antenna port j of the RRU.
  • a connection relationship between the antenna port j of the RRU and the N ports of the base station antenna can be obtained.
  • the detection system is further configured to detect a connection relationship between each of the other M-1 antenna ports than the antenna port j of the RRU and the N ports of the base station antenna.
  • a connection relationship between the M ports of the RRU and the N ports of the base station antenna can be obtained.
  • the detection system further includes a maintenance terminal, and the maintenance terminal is configured to generate a cable sequence connection diagram based on a connection relationship between each of the M antenna ports of the RRU and the N ports of the base station antenna.
  • the cable sequence connection diagram may be displayed on the maintenance terminal with a display interface.
  • a user can intuitively see a connection relationship between an antenna port of the RRU and a port of the base station antenna by observing the cable sequence connection diagram.
  • the RCU when controlling the switch circuit Ki to be disconnected and controlling the another switch circuit to be connected, is configured to: send a control signal to each switch circuit of the base station antenna; and based on the control signal, control the switch circuit Ki to be disconnected, and control all the other switch circuits to be connected.
  • control signal includes a digit sequence used to indicate a high/low level.
  • connection and disconnection of the switch circuit are controlled by using the digit sequence indicating a high/low level.
  • a digit sequence including 0 and 1 may be used as the control signal, 0 may be used to indicate a low level, and 1 may be used to indicate a high level. Further, 1 may alternatively be used to indicate a low level, and 0 may alternatively be used to indicate a high level, provided that the switch circuit Ki is disconnected and the another switch circuit is connected after control is performed by using the control signal.
  • the switch circuit Ki includes a PIN diode.
  • connection or disconnection of the PIN diode is controlled by using the control signal.
  • FIG. 1 A is a schematic diagram of a case in which ports between an 8T8R RRU and a base station antenna are correctly connected in the conventional technology
  • FIG. 1 B is a schematic diagram of a case in which ports between an 8T8R RRU and a base station antenna are incorrectly connected in the conventional technology
  • FIG. 2 A is a schematic diagram of a connection between an RRU and a base station antenna according to an embodiment
  • FIG. 2 B is a schematic diagram of a connection structure between an RCU and a switch circuit according to an embodiment
  • FIG. 2 C is a schematic flowchart of a cable sequence detection method according to an embodiment
  • FIG. 3 A is a schematic diagram of a structure of a cable sequence detection system according to an embodiment
  • FIG. 3 B is a schematic flowchart of interaction in a cable sequence detection method in the embodiment shown in FIG. 3 A ;
  • FIG. 3 C is a schematic cable sequence connection diagram generated on a maintenance terminal according to an embodiment
  • FIG. 3 D is a schematic cable sequence connection diagram generated on a maintenance terminal according to an embodiment.
  • FIG. 3 E is a schematic cable sequence connection diagram generated on a maintenance terminal according to an embodiment.
  • An embodiment provides a cable sequence detection method, which may be applied to an apparatus shown in FIG. 2 A .
  • a base station antenna includes eight ports, and an RRU includes eight antenna ports and one CAL.
  • a connection relationship between an RCU and each switch circuit is not shown in FIG. 2 A .
  • Any port i 210 of the base station antenna corresponds to a directional coupling branch Ti 211 , and a switch circuit Ki 2111 is disposed on the Ti.
  • the switch circuit is a PIN diode, and connection and disconnection of the switch circuit Ki are controlled by an RCU 213 .
  • the RCU 213 sends a control signal to each switch circuit of the base station antenna, to control the switch circuit Ki to be disconnected and control all the other switch circuits to be connected.
  • the control signal may be a digit sequence used to indicate a high/low level.
  • the RRU sends a detection signal to the base station antenna through the any antenna port.
  • the RCU controls a switch circuit to disconnect a switch circuit corresponding to a to-be-detected channel and controls another switch circuit to be connected.
  • whether an antenna port that is of the RRU and that corresponds to the to-be-detected channel is connected to a port of the base station antenna is determined based on energy obtained during coupling by a directional coupling branch corresponding to the to-be-detected channel. According to this method, a cable sequence of the ports between the RRU and the base station antenna can be accurately detected.
  • An embodiment further provides a detection system, including a base station antenna, a remote radio unit RRU, and a remote control unit RCU.
  • the RRU includes M antenna ports and one calibration port CAL.
  • the base station antenna includes N ports. Any port i of the base station antenna corresponds to a directional coupling branch Ti, a switch circuit Ki is disposed on the Ti, and connection and disconnection of the switch circuit Ki are controlled by the remote control unit RCU.
  • M, N, and i are integers, and 1 ⁇ i ⁇ N.
  • the RCU is configured to: control the switch circuit Ki to be disconnected and control another switch circuit to be connected.
  • the RRU is configured to: send a detection signal to the base station antenna through any antenna port j after the M antenna ports of the RRU have been connected to the N ports of the base station antenna; after the RCU controls the switch circuit Ki to be disconnected and controls the another switch circuit to be connected, detect whether energy Qi obtained during coupling by the directional coupling branch Ti is greater than a threshold; and if Qi is greater than the threshold, determine that the antenna port j of the RRU is connected to the port i of the base station antenna; or if Qi is less than or equal to the threshold, determine that the antenna port j of the RRU is not connected to the port i of the base station antenna.
  • the detection system is further configured to detect a connection relationship between each of the other N-1 ports than the port i of the base station antenna and the antenna port j of the RRU.
  • the detection system is further configured to detect a connection relationship between each of the other M-1 antenna ports than the antenna port j of the RRU and the N ports of the base station antenna.
  • the detection system further includes a maintenance terminal.
  • the maintenance terminal is configured to generate a cable sequence connection diagram based on a connection relationship between each of the M antenna ports of the RRU and the N ports of the base station antenna.
  • the RCU when controlling the switch circuit Ki to be disconnected and controlling the another switch circuit to be connected, is configured to: send a control signal to each switch circuit of the base station antenna; and based on the control signal, control the switch circuit Ki to be disconnected, and control all the other switch circuits to be connected.
  • control signal includes a digit sequence used to indicate a high/low level.
  • the switch circuit Ki includes a PIN diode.
  • the RRU is not limited to only one RRU, but there may be a plurality of RRUs.
  • FIG. 3 A in this embodiment, there are three RRUs: an RRU 1, an RRU 2, and an RRU 3.
  • Antenna ports of an RRU are in a one-to-one correspondence with ports of a base station antenna.
  • FIG. 3 A corresponds to a correct connection cable sequence. After the ports between the RRU and the base station antenna are connected, the connection cable sequence may be detected.
  • FIG. 3 B is a flowchart of interaction during cable sequence detection.
  • Related hardware includes a maintenance terminal, a BBU, an RRU, an RCU, and the like.
  • a cable sequence detection method in this embodiment includes the following steps.
  • the maintenance terminal may be a device such as a display that has a display interface.
  • a button used to trigger the detection instruction may be disposed on the display interface. The user may trigger, by tapping the button of the detection instruction, to generate the detection instruction, and send the detection instruction to the BBU.
  • m may be 1, 2, or 3, and n may be any number from 1 to 8.
  • traversal test may be performed on eight antenna ports in the RRU 1, then traversal test may be performed on eight antenna ports in the RRU 2, and finally traversal test may be performed on eight antenna ports in the RRU 3.
  • an RRU test sequence may not be limited to the foregoing sequence but may alternatively be another possible sequence. This is not limited herein.
  • the result fed back by the RRU may be information about a connection between an antenna port of the RRU and a port of the base station antenna or may be obtained power information. If Qi is greater than the threshold, it is determined that the antenna port j of the RRU is connected to the port i of the base station antenna. If Qi is less than or equal to the threshold, it is determined that the antenna port j of the RRU is not connected to the port i of the base station antenna.
  • FIG. 3 C , FIG. 3 D , and FIG. 3 E correspond to cable sequence connection diagrams generated based on detection results in some embodiments.
  • a connection relationship between an antenna port of the RRU and a port of the base station antenna in a corresponding embodiment may be learned of by observing FIG. 3 C , FIG. 3 D , and FIG. 3 E .
  • the cable sequence connection diagram may be displayed on the maintenance terminal with the display interface.
  • the user can intuitively see a connection relationship between an antenna port of the RRU and a port of the base station antenna by observing the cable sequence connection diagram.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Electromagnetism (AREA)
  • Signal Processing (AREA)
  • General Physics & Mathematics (AREA)
  • Mobile Radio Communication Systems (AREA)
  • Monitoring And Testing Of Transmission In General (AREA)

Abstract

A cable sequence detection method and a detection system. A base station antenna includes N ports, an RRU includes M antenna ports and one calibration port, any port i of the base station antenna corresponds to a directional coupling branch Ti, and a switch circuit Ki whose connection and disconnection are controlled by an RCU is disposed on the Ti. The method includes: the RRU sends a detection signal to the base station antenna through antenna port j; the RCU controls the switch circuit Ki to be disconnected and another switch circuit to be connected; the RRU detects whether energy Qi obtained by the Ti is greater than a threshold; and the RRU determines whether the antenna port j of the RRU is connected to the port i of the base station antenna according to whether Qi is greater than the threshold.

Description

CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation of International Application No. PCT/CN2019/107864, filed on Sep. 25, 2019, the disclosure of which is hereby incorporated by reference in its entirety.
TECHNICAL FIELD
The embodiments relate to the field of communications technologies, and in particular, to a cable sequence detection method and a detection system for detecting a connection relationship when ports between a remote radio unit (RRU) and a base station antenna are connected through radio frequency cables.
BACKGROUND
In a base station architecture including a baseband unit (BBU), an RRU, and a base station antenna, the RRU is connected to the base station antenna through a radio frequency jumper, and when a base station is established, RRU ports are in a one-to-one correspondence with base station antenna ports. In a receiving direction, the RRU receives a signal from the base station antenna and sends the signal to the BBU. In a sending direction, the RRU receives a signal from the BBU, processes the signal, and then sends a processed signal through the base station antenna.
An 8 transmit 8 receive (8T8R) RRU is used as an example. The 8T8R RRU includes eight antenna ports (an ANT 0 to an ANT 7) and one antenna calibration port (CAL). The 8T8R RRU is connected to the base station antenna through nine radio frequency jumpers, and the nine radio frequency jumpers include eight service jumpers and one calibration jumper. Because there are a relatively large quantity of radio frequency jumpers, a misoperation may occur during engineering installation, resulting in an incorrect cable sequence connection of the radio frequency jumpers. Refer to FIG. 1A. In a normal case, the eight antenna ports of the 8T8R RRU are sequentially connected to eight ports of the base station antenna. In addition, the calibration port CAL of the RRU is connected to a calibration port of the base station antenna. In some possible implementations, the calibration port of the RRU is connected to the base station antenna through a directional coupler and a power splitter. Refer to FIG. 1B. Because of a misoperation, an antenna port 4 of the 8T8R RRU is connected to a port 8 of the base station antenna, and an antenna port 8 of the 8T8R RRU is connected to a port 4 of the base station antenna. Because there is an installation distance (which is usually 2.5 m to 10 m) between the base station antenna and the RRU, it is not easy to discover the incorrect cable sequence connection of the radio frequency jumpers.
During communication, especially in a 5th generation mobile communications standard, a beam scanning scheme is used for coverage, and a precise coverage and beamforming effect can be achieved only when the RRU ports and the corresponding base station antenna ports are connected in a one-to-one correspondence. Therefore, a connection cable sequence of the radio frequency jumpers between the base station antenna and the RRU is crucial to running and performance in 5th generation mobile communication.
SUMMARY
Embodiments may provide a cable sequence detection method and a detection system, to accurately detect a cable sequence of ports between an RRU and a base station antenna.
According to a first aspect, an embodiment provides a cable sequence detection method. A base station antenna includes N ports, and a remote radio unit RRU includes M antenna ports and one calibration port CAL. Any port i of the base station antenna corresponds to a directional coupling branch Ti, a switch circuit Ki is disposed on the Ti, and connection and disconnection of the switch circuit Ki are controlled by a remote control unit RCU. M, N, and i are integers, and 1≤i≤N. The M antenna ports of the RRU have been connected to the N ports of the base station antenna. The cable sequence detection method includes the following steps:
    • the RRU sends a detection signal to the base station antenna through any antenna port j;
    • the RCU controls the switch circuit Ki to be disconnected, and controls another switch circuit to be connected;
    • the RRU detects whether energy Qi obtained during coupling by the directional coupling branch Ti is greater than a threshold; and
    • if Qi is greater than the threshold, the RRU determines that the antenna port j of the RRU is connected to the port i of the base station antenna; or if Qi is less than or equal to the threshold, the RRU determines that the antenna port j of the RRU is not connected to the port i of the base station antenna.
In this embodiment, after the ports between the RRU and the base station antenna are connected, whether any antenna port of the RRU is connected to any port of the base station antenna is determined. The RRU sends a detection signal to the base station antenna through the any antenna port. The RCU controls a switch circuit to disconnect a switch circuit corresponding to a to-be-detected channel, and controls another switch circuit to be connected. Then, whether an antenna port that is of the RRU and that corresponds to the to-be-detected channel is connected to a port of the base station antenna is determined based on energy obtained during coupling by a directional coupling branch corresponding to the to-be-detected channel. According to this method, a cable sequence of the ports between the RRU and the base station antenna can be accurately detected.
Based on the first aspect, in some possible implementations, the method further includes: detecting a connection relationship between each of the other N-1 ports than the port i of the base station antenna and the antenna port j of the RRU.
According to this embodiment, a connection relationship between the antenna port j of the RRU and the N ports of the base station antenna can be obtained.
Based on the first aspect, in some possible implementations, the method further includes: detecting a connection relationship between each of the other M-1 antenna ports than the antenna port j of the RRU and the N ports of the base station antenna.
According to this embodiment, a connection relationship between the M ports of the RRU and the N ports of the base station antenna can be obtained.
Based on the first aspect, in some possible implementations, the method further includes: generating a cable sequence connection diagram based on a connection relationship between each of the M antenna ports of the RRU and the N ports of the base station antenna.
When this embodiment is used, the cable sequence connection diagram may be displayed on a maintenance terminal with a display interface. A user can intuitively see a connection relationship between an antenna port of the RRU and a port of the base station antenna by observing the cable sequence connection diagram.
Based on the first aspect, in some possible implementations, that the RCU controls the switch circuit Ki to be disconnected, and controls another switch circuit to be connected includes: The RCU sends a control signal to each switch circuit of the base station antenna; and based on the control signal, controls the switch circuit Ki to be disconnected, and controls all the other switch circuits to be connected.
Based on the first aspect, in some possible implementations, the control signal may be a digit sequence used to indicate a high/low level.
When this embodiment is used, connection and disconnection of the switch circuit are controlled by using the digit sequence indicating a high/low level. For example, a digit sequence including 0 and 1 may be used as the control signal, 0 may be used to indicate a low level, and 1 may be used to indicate a high level. Further, 1 may alternatively be used to indicate a low level, and 0 may alternatively be used to indicate a high level, provided that the switch circuit Ki is disconnected and the another switch circuit is connected after control is performed by using the control signal.
In some possible implementations, the switch circuit Ki includes a PIN diode.
It should be noted that a common diode includes a PN junction. A thin light-doping intrinsic (I) semiconductor layer is added between P and N semiconductor materials, and a formed diode of this P-I-N structure is the PIN diode.
When this embodiment is used, after the RCU sends the control signal, connection or disconnection of the PIN diode is controlled by using the control signal.
According to a second aspect, an embodiment provides a detection system, including a base station antenna, a remote radio unit RRU, and a remote control unit RCU.
The RRU includes M antenna ports and one calibration port CAL.
The base station antenna includes N ports, any port i of the base station antenna corresponds to a directional coupling branch Ti, a switch circuit Ki is disposed on the Ti, connection and disconnection of the switch circuit Ki are controlled by the remote control unit RCU, M, N, and i are integers, and 1≤i≤N.
The RCU is configured to: control the switch circuit Ki to be disconnected and control another switch circuit to be connected.
The RRU is configured to: send a detection signal to the base station antenna through any antenna port j after the M antenna ports of the RRU have been connected to the N ports of the base station antenna; after the RCU controls the switch circuit Ki to be disconnected and controls the another switch circuit to be connected, detect whether energy Qi obtained during coupling by the directional coupling branch Ti is greater than a threshold; and if Qi is greater than the threshold, determine that the antenna port j of the RRU is connected to the port i of the base station antenna; or if Qi is less than or equal to the threshold, determine that the antenna port j of the RRU is not connected to the port i of the base station antenna.
In this embodiment, after the ports between the RRU and the base station antenna are connected, whether any antenna port of the RRU is connected to any port of the base station antenna is determined. The RRU sends a detection signal to the base station antenna through the any antenna port. The RCU controls a switch circuit to disconnect a switch circuit corresponding to a to-be-detected channel and controls another switch circuit to be connected. Then, whether an antenna port that is of the RRU and that corresponds to the to-be-detected channel is connected to a port of the base station antenna is determined based on energy obtained during coupling by a directional coupling branch corresponding to the to-be-detected channel. According to this method, a cable sequence of the ports between the RRU and the base station antenna can be accurately detected.
Based on the second aspect, in some possible implementations, the detection system is further configured to detect a connection relationship between each of the other N-1 ports than the port i of the base station antenna and the antenna port j of the RRU.
According to this embodiment, a connection relationship between the antenna port j of the RRU and the N ports of the base station antenna can be obtained.
Based on the second aspect, in some possible implementations, the detection system is further configured to detect a connection relationship between each of the other M-1 antenna ports than the antenna port j of the RRU and the N ports of the base station antenna.
According to this embodiment, a connection relationship between the M ports of the RRU and the N ports of the base station antenna can be obtained.
Based on the second aspect, in some possible implementations, the detection system further includes a maintenance terminal, and the maintenance terminal is configured to generate a cable sequence connection diagram based on a connection relationship between each of the M antenna ports of the RRU and the N ports of the base station antenna.
When this embodiment is used, the cable sequence connection diagram may be displayed on the maintenance terminal with a display interface. A user can intuitively see a connection relationship between an antenna port of the RRU and a port of the base station antenna by observing the cable sequence connection diagram.
Based on the second aspect, in some possible implementations, when controlling the switch circuit Ki to be disconnected and controlling the another switch circuit to be connected, the RCU is configured to: send a control signal to each switch circuit of the base station antenna; and based on the control signal, control the switch circuit Ki to be disconnected, and control all the other switch circuits to be connected.
Based on the second aspect, in some possible implementations, the control signal includes a digit sequence used to indicate a high/low level.
When this embodiment is used, connection and disconnection of the switch circuit are controlled by using the digit sequence indicating a high/low level. For example, a digit sequence including 0 and 1 may be used as the control signal, 0 may be used to indicate a low level, and 1 may be used to indicate a high level. Further, 1 may alternatively be used to indicate a low level, and 0 may alternatively be used to indicate a high level, provided that the switch circuit Ki is disconnected and the another switch circuit is connected after control is performed by using the control signal.
Based on the second aspect, in some possible implementations, the switch circuit Ki includes a PIN diode.
When this embodiment is used, after the RCU sends the control signal, connection or disconnection of the PIN diode is controlled by using the control signal.
BRIEF DESCRIPTION OF DRAWINGS
The following describes the accompanying drawings required for describing embodiments or the background.
FIG. 1A is a schematic diagram of a case in which ports between an 8T8R RRU and a base station antenna are correctly connected in the conventional technology;
FIG. 1B is a schematic diagram of a case in which ports between an 8T8R RRU and a base station antenna are incorrectly connected in the conventional technology;
FIG. 2A is a schematic diagram of a connection between an RRU and a base station antenna according to an embodiment;
FIG. 2B is a schematic diagram of a connection structure between an RCU and a switch circuit according to an embodiment;
FIG. 2C is a schematic flowchart of a cable sequence detection method according to an embodiment;
FIG. 3A is a schematic diagram of a structure of a cable sequence detection system according to an embodiment;
FIG. 3B is a schematic flowchart of interaction in a cable sequence detection method in the embodiment shown in FIG. 3A;
FIG. 3C is a schematic cable sequence connection diagram generated on a maintenance terminal according to an embodiment;
FIG. 3D is a schematic cable sequence connection diagram generated on a maintenance terminal according to an embodiment; and
FIG. 3E is a schematic cable sequence connection diagram generated on a maintenance terminal according to an embodiment.
DETAILED DESCRIPTION OF THE EMBODIMENTS
The following describes the solutions in embodiments with reference to the accompanying drawings in the embodiments. It is clear that the described embodiments are merely some but not all of the embodiments. A person of ordinary skill in the art may obtain other embodiments.
Terms used in embodiments are only used to explain embodiments, but are not intended to limit.
An embodiment provides a cable sequence detection method, which may be applied to an apparatus shown in FIG. 2A. As shown in FIG. 2A, a base station antenna includes eight ports, and an RRU includes eight antenna ports and one CAL. It should be noted that a connection relationship between an RCU and each switch circuit is not shown in FIG. 2A. For the relationship between the RCU and each switch circuit, refer to FIG. 2B. Any port i 210 of the base station antenna corresponds to a directional coupling branch Ti 211, and a switch circuit Ki 2111 is disposed on the Ti. In FIG. 2B, the switch circuit is a PIN diode, and connection and disconnection of the switch circuit Ki are controlled by an RCU 213. The RCU 213 sends a control signal to each switch circuit of the base station antenna, to control the switch circuit Ki to be disconnected and control all the other switch circuits to be connected. In some possible implementations, the control signal may be a digit sequence used to indicate a high/low level. After the eight antenna ports of the RRU have been connected to the eight ports of the base station antenna, the cable sequence detection method for detecting a connection relationship is shown in FIG. 2C and includes the following steps.
    • 221: The RRU sends a detection signal to the base station antenna through any antenna port j.
    • 222: The RCU controls the switch circuit Ki to be disconnected and controls another switch circuit to be connected.
    • 223: The RRU detects whether energy Qi obtained during coupling by the directional coupling branch Ti is greater than a threshold; and if Qi is greater than the threshold, determines that the antenna port j of the RRU is connected to the port i of the base station antenna; or if Qi is less than or equal to the threshold, determines that the antenna port j of the RRU is not connected to the port i of the base station antenna.
In this embodiment, after the ports between the RRU and the base station antenna are connected, whether any antenna port of the RRU is connected to any port of the base station antenna is determined. The RRU sends a detection signal to the base station antenna through the any antenna port. The RCU controls a switch circuit to disconnect a switch circuit corresponding to a to-be-detected channel and controls another switch circuit to be connected. Then, whether an antenna port that is of the RRU and that corresponds to the to-be-detected channel is connected to a port of the base station antenna is determined based on energy obtained during coupling by a directional coupling branch corresponding to the to-be-detected channel. According to this method, a cable sequence of the ports between the RRU and the base station antenna can be accurately detected.
An embodiment further provides a detection system, including a base station antenna, a remote radio unit RRU, and a remote control unit RCU. The RRU includes M antenna ports and one calibration port CAL. The base station antenna includes N ports. Any port i of the base station antenna corresponds to a directional coupling branch Ti, a switch circuit Ki is disposed on the Ti, and connection and disconnection of the switch circuit Ki are controlled by the remote control unit RCU. M, N, and i are integers, and 1≤i≤N. The RCU is configured to: control the switch circuit Ki to be disconnected and control another switch circuit to be connected. The RRU is configured to: send a detection signal to the base station antenna through any antenna port j after the M antenna ports of the RRU have been connected to the N ports of the base station antenna; after the RCU controls the switch circuit Ki to be disconnected and controls the another switch circuit to be connected, detect whether energy Qi obtained during coupling by the directional coupling branch Ti is greater than a threshold; and if Qi is greater than the threshold, determine that the antenna port j of the RRU is connected to the port i of the base station antenna; or if Qi is less than or equal to the threshold, determine that the antenna port j of the RRU is not connected to the port i of the base station antenna.
In some possible implementations, the detection system is further configured to detect a connection relationship between each of the other N-1 ports than the port i of the base station antenna and the antenna port j of the RRU.
In some possible implementations, the detection system is further configured to detect a connection relationship between each of the other M-1 antenna ports than the antenna port j of the RRU and the N ports of the base station antenna.
In some possible implementations, the detection system further includes a maintenance terminal.
The maintenance terminal is configured to generate a cable sequence connection diagram based on a connection relationship between each of the M antenna ports of the RRU and the N ports of the base station antenna.
In some possible implementations, when controlling the switch circuit Ki to be disconnected and controlling the another switch circuit to be connected, the RCU is configured to: send a control signal to each switch circuit of the base station antenna; and based on the control signal, control the switch circuit Ki to be disconnected, and control all the other switch circuits to be connected.
In some possible implementations, the control signal includes a digit sequence used to indicate a high/low level.
In some possible implementations, the switch circuit Ki includes a PIN diode.
It should be noted that during cable sequence detection, the RRU is not limited to only one RRU, but there may be a plurality of RRUs. As shown in FIG. 3A, in this embodiment, there are three RRUs: an RRU 1, an RRU 2, and an RRU 3. Antenna ports of an RRU are in a one-to-one correspondence with ports of a base station antenna. FIG. 3A corresponds to a correct connection cable sequence. After the ports between the RRU and the base station antenna are connected, the connection cable sequence may be detected. FIG. 3B is a flowchart of interaction during cable sequence detection. Related hardware includes a maintenance terminal, a BBU, an RRU, an RCU, and the like. A cable sequence detection method in this embodiment includes the following steps.
    • 301: A user sends a detection instruction to the BBU through the maintenance terminal.
The maintenance terminal may be a device such as a display that has a display interface. A button used to trigger the detection instruction may be disposed on the display interface. The user may trigger, by tapping the button of the detection instruction, to generate the detection instruction, and send the detection instruction to the BBU.
    • 302: The BBU controls a port n of an mth RRU to send a test signal.
Herein, m may be 1, 2, or 3, and n may be any number from 1 to 8. In some possible implementations, traversal test may be performed on eight antenna ports in the RRU 1, then traversal test may be performed on eight antenna ports in the RRU 2, and finally traversal test may be performed on eight antenna ports in the RRU 3. It may be understood that an RRU test sequence may not be limited to the foregoing sequence but may alternatively be another possible sequence. This is not limited herein.
    • 303: The RRU sends the test signal to the RCU.
    • 304: The RCU controls a switch circuit Ki corresponding to a to-be-tested channel to be disconnected and controls another switch circuit to be connected.
    • 305: The RRU obtains a receive power of a calibration loop.
    • 306: The RRU feeds back a detection result.
It should be noted that the result fed back by the RRU may be information about a connection between an antenna port of the RRU and a port of the base station antenna or may be obtained power information. If Qi is greater than the threshold, it is determined that the antenna port j of the RRU is connected to the port i of the base station antenna. If Qi is less than or equal to the threshold, it is determined that the antenna port j of the RRU is not connected to the port i of the base station antenna.
    • 307: Repeat step 302 to step 306, cyclically control the three RRUs, and sequentially detect eight antenna ports of each RRU.
    • 308: The BBU feeds back the detection result to the maintenance terminal.
    • 309: Generate a cable sequence connection diagram based on the detection result that is received.
For example, FIG. 3C, FIG. 3D, and FIG. 3E correspond to cable sequence connection diagrams generated based on detection results in some embodiments.
A connection relationship between an antenna port of the RRU and a port of the base station antenna in a corresponding embodiment may be learned of by observing FIG. 3C, FIG. 3D, and FIG. 3E.
When this embodiment is used, the cable sequence connection diagram may be displayed on the maintenance terminal with the display interface. The user can intuitively see a connection relationship between an antenna port of the RRU and a port of the base station antenna by observing the cable sequence connection diagram.
It should be understood that the terms “include” and “have”, and any variants thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device including a series of steps or modules is not necessarily limited to those clearly listed steps or modules but may include other steps or modules that are not clearly listed or are inherent to the process, method, product, or device.
What is described above is merely example embodiments, and is not intended to limit the protection scope. A person of ordinary skill in the art may understand that all or some of processes that implement the foregoing embodiment and equivalent modifications made shall fall within the scope of the embodiments.

Claims (14)

What is claimed is:
1. A cable sequence detection method, wherein a base station antenna comprises N ports, a remote radio unit (RRU) comprises M antenna ports and one calibration port (CAL), any port i of the base station antenna corresponds to a directional coupling branch Ti, a switch circuit Ki is disposed on the Ti, connection and disconnection of the switch circuit Ki are controlled by a remote control unit (RCU), M, N, and i are integers, 1≤i≤N, the M antenna ports of the RRU have been connected to the N ports of the base station antenna, and the method comprises:
sending, by the RRU, a detection signal to the base station antenna through any antenna port j;
controlling, by the RCU, the switch circuit Ki to be disconnected, and controlling another switch circuit to be connected;
detecting, by the RRU, whether energy Qi obtained during coupling by the directional coupling branch Ti is greater than a threshold; and
in response to Qi being greater than the threshold, determining that the antenna port j of the RRU is connected to the port i of the base station antenna; or
in response to Qi being less than or equal to the threshold, determining that the antenna port j of the RRU is not connected to the port i of the base station antenna.
2. The cable sequence detection method according to claim 1, further comprising:
detecting a connection relationship between each of the other N-1 ports other than the port i of the base station antenna and the antenna port j of the RRU.
3. The cable sequence detection method according to claim 1, further comprising:
detecting a connection relationship between each of the other M-1 antenna ports other than the antenna port j of the RRU and the N ports of the base station antenna.
4. The cable sequence detection method according to claim 3, further comprising:
generating a cable sequence connection diagram based on a connection relationship between each of the M antenna ports of the RRU and the N ports of the base station antenna.
5. The cable sequence detection method according to claim 1, wherein the controlling, by the RCU, the switch circuit Ki to be disconnected, and controlling another switch circuit to be connected further comprises:
sending, by the RCU, a control signal to each switch circuit of the base station antenna; and based on the control signal;
controlling the switch circuit Ki to be disconnected; and
controlling all the other switch circuits to be connected.
6. The cable sequence detection method according to claim 2, wherein the control signal comprises a digit sequence used to indicate a high/low level.
7. The cable sequence detection method according to claim 1, wherein the switch circuit Ki comprises a PIN diode.
8. A detection system comprising:
a base station antenna, a remote radio unit (RRU), and a remote control unit (RCU), wherein the RRU comprises M antenna ports and one calibration port (CAL); the base station antenna comprises N ports, any port i of the base station antenna corresponds to a directional coupling branch Ti, a switch circuit Ki is disposed on the Ti, connection and disconnection of the switch circuit Ki is controlled by the RCU, M, N, and i are integers, and 1≤i≤N, and the RCU is configured to:
control the switch circuit Ki to be disconnected, and control another switch circuit to be connected; and the RRU is configured to:
send a detection signal to the base station antenna through any antenna port j after the M antenna ports of the RRU have been connected to the N ports of the base station antenna;
after the RCU controls the switch circuit Ki to be disconnected and controls the another switch circuit to be connected, detect whether energy Qi obtained during coupling by the directional coupling branch Ti is greater than a threshold;
and in response to Qi being greater than the threshold, determine that the antenna port j of the RRU is connected to the port i of the base station antenna; or
in response to Qi being less than or equal to the threshold, determine that the antenna port j of the RRU is not connected to the port i of the base station antenna.
9. The detection system according to claim 8, wherein the detection system is further configured to detect a connection relationship between each of the other N-1 ports other than the port i of the base station antenna and the antenna port j of the RRU.
10. The detection system according to claim 8, wherein the detection system is further configured to detect a connection relationship between each of the other M-1 antenna ports other than the antenna port j of the RRU and the N ports of the base station antenna.
11. The detection system according to claim 10, wherein the detection system further comprises:
a maintenance terminal configured to generate a cable sequence connection diagram based on a connection relationship between each of the M antenna ports of the RRU and the N ports of the base station antenna.
12. The detection system according to claim 8, wherein when controlling the switch circuit Ki to be disconnected and controlling the another switch circuit to be connected, the RCU is further configured to:
send a control signal to each switch circuit of the base station antenna; and
based on the control signal, control the switch circuit Ki to be disconnected, and control all the other switch circuits to be connected.
13. The detection system according to claim 9, wherein the control signal comprises a digit sequence used to indicate a high/low level.
14. The detection system according to claim 8, wherein the switch circuit Ki comprises a PIN diode.
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Families Citing this family (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN110970731A (en) * 2018-09-30 2020-04-07 华为技术有限公司 Adjusting device, antenna and communication equipment
EP4020823A1 (en) * 2020-12-22 2022-06-29 INTEL Corporation A distributed radiohead system
EP4020853A1 (en) * 2020-12-24 2022-06-29 INTEL Corporation A distributed radiohead system
CN118713772B (en) * 2023-03-27 2025-10-28 华为技术有限公司 Line sequence determination method and related device

Citations (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1545362A (en) 2003-11-13 2004-11-10 中兴通讯股份有限公司 A personal handheld mobile communication system interface line sequence detection method
US7324837B2 (en) * 2003-03-19 2008-01-29 Sanyo Electric Co., Ltd. Base station apparatus of which installation is facilitated
CN101207836A (en) 2006-12-18 2008-06-25 中兴通讯股份有限公司 Test method for testing at least one cable
CN101340687A (en) 2007-07-04 2009-01-07 中兴通讯股份有限公司 Smart antenna radio frequency end cable sequence detection method and device
CN101741418A (en) 2008-11-04 2010-06-16 大唐移动通信设备有限公司 Method and device for detecting sequence of intelligent antennae
CN101989872A (en) 2009-08-04 2011-03-23 鼎桥通信技术有限公司 Detection method of jumper wire sequence of antenna
CN102571239A (en) 2012-01-13 2012-07-11 中兴通讯股份有限公司 Test system for radio frequency index
CN203607549U (en) 2013-12-06 2014-05-21 华为技术有限公司 Active antenna system
CN104581793A (en) 2013-10-17 2015-04-29 中国移动通信集团公司 A detection method and device for a base station antenna feeder system
US9209853B1 (en) * 2013-12-02 2015-12-08 Sprint Communications Company L.P. Radio port switching device and method of using the radio port switching device
CN205450123U (en) 2015-12-21 2016-08-10 中国电信股份有限公司江苏分公司 Multipolar antenna detection device
JP2016220039A (en) 2015-05-20 2016-12-22 富士通株式会社 Antenna cable connection confirmation method and communication device
CN106330345A (en) 2015-06-29 2017-01-11 中兴通讯股份有限公司 Method and device for detecting connection line sequence of electric tilt antennas
CN109560824A (en) 2017-09-27 2019-04-02 大唐移动通信设备有限公司 A kind of test macro of RF index

Patent Citations (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7324837B2 (en) * 2003-03-19 2008-01-29 Sanyo Electric Co., Ltd. Base station apparatus of which installation is facilitated
CN1545362A (en) 2003-11-13 2004-11-10 中兴通讯股份有限公司 A personal handheld mobile communication system interface line sequence detection method
CN101207836A (en) 2006-12-18 2008-06-25 中兴通讯股份有限公司 Test method for testing at least one cable
CN101340687A (en) 2007-07-04 2009-01-07 中兴通讯股份有限公司 Smart antenna radio frequency end cable sequence detection method and device
CN101741418A (en) 2008-11-04 2010-06-16 大唐移动通信设备有限公司 Method and device for detecting sequence of intelligent antennae
CN101989872A (en) 2009-08-04 2011-03-23 鼎桥通信技术有限公司 Detection method of jumper wire sequence of antenna
CN102571239A (en) 2012-01-13 2012-07-11 中兴通讯股份有限公司 Test system for radio frequency index
CN104581793A (en) 2013-10-17 2015-04-29 中国移动通信集团公司 A detection method and device for a base station antenna feeder system
US9209853B1 (en) * 2013-12-02 2015-12-08 Sprint Communications Company L.P. Radio port switching device and method of using the radio port switching device
CN203607549U (en) 2013-12-06 2014-05-21 华为技术有限公司 Active antenna system
JP2016220039A (en) 2015-05-20 2016-12-22 富士通株式会社 Antenna cable connection confirmation method and communication device
CN106330345A (en) 2015-06-29 2017-01-11 中兴通讯股份有限公司 Method and device for detecting connection line sequence of electric tilt antennas
CN205450123U (en) 2015-12-21 2016-08-10 中国电信股份有限公司江苏分公司 Multipolar antenna detection device
CN109560824A (en) 2017-09-27 2019-04-02 大唐移动通信设备有限公司 A kind of test macro of RF index

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EP4027542A1 (en) 2022-07-13
US20220214407A1 (en) 2022-07-07

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